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Reconstruction of chaotic signals with application to channel equalization in chaos-based communication systems

机译:混沌信号的重构及其在基于混沌的通信系统中的信道均衡中的应用

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摘要

A number of schemes have been proposed for communication using chaos over the past years. Regardless of the exact modulation method used, the transmitted signal must go through a physical channel which undesirably introduces distortion to the signal and adds noise to it. The problem is particularly serious when coherent-based demodulation is used because the necessary process of chaos synchronization is difficult to implement in practice. This paper addresses the channel distortion problem and proposes a technique for channel equalization in chaos-based communication systems. The proposed equalization is realized by a modified recurrent neural network (RNN) incorporating a specific training (equalizing) algorithm. Computer simulations are used to demonstrate the performance of the proposed equalizer in chaos-based communication systems. The Hénon map and Chua's circuit are used to generate chaotic signals. It is shown that the proposed RNN-based equalizer outperforms conventional equalizers as well as those based on feedforward neural networks for noisy, distorted linear and non-linear channels.
机译:在过去的几年中,已经提出了许多用于利用混乱进行通信的方案。不管使用哪种精确的调制方法,发送的信号都必须通过物理信道,这会不希望地给信号引入失真并给信号增加噪声。当使用基于相干的解调时,这个问题特别严重,因为在实践中很难实现混沌同步的必要过程。本文解决了信道失真问题,并提出了一种基于混沌的通信系统中的信道均衡技术。提出的均衡是通过结合了特定训练(均衡)算法的改进的递归神经网络(RNN)实现的。计算机仿真被用来证明所提出的均衡器在基于混沌的通信系统中的性能。 Hénon映射和蔡氏电路用于生成混沌信号。结果表明,所提出的基于RNN的均衡器优于常规均衡器以及基于前馈神经网络的均衡器,可用于嘈杂,失真的线性和非线性通道。

著录项

  • 作者

    Feng, J; Tse, CK; Lau, FCM;

  • 作者单位
  • 年度 2004
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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